EP1586169A2 - System und verfahren zur vergrösserung derzellularsystemkapazität durch verwendung derselben frequenz und desselben zeitschlitzes sowohl für aufwärts- als auch abwärtsübertragungen - Google Patents

System und verfahren zur vergrösserung derzellularsystemkapazität durch verwendung derselben frequenz und desselben zeitschlitzes sowohl für aufwärts- als auch abwärtsübertragungen

Info

Publication number
EP1586169A2
EP1586169A2 EP04701824A EP04701824A EP1586169A2 EP 1586169 A2 EP1586169 A2 EP 1586169A2 EP 04701824 A EP04701824 A EP 04701824A EP 04701824 A EP04701824 A EP 04701824A EP 1586169 A2 EP1586169 A2 EP 1586169A2
Authority
EP
European Patent Office
Prior art keywords
antenna
interference
adaptive
self
time slot
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
EP04701824A
Other languages
English (en)
French (fr)
Other versions
EP1586169A4 (de
Inventor
Paul Marinier
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
InterDigital Technology Corp
Original Assignee
InterDigital Technology Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by InterDigital Technology Corp filed Critical InterDigital Technology Corp
Publication of EP1586169A2 publication Critical patent/EP1586169A2/de
Publication of EP1586169A4 publication Critical patent/EP1586169A4/de
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/38Transceivers, i.e. devices in which transmitter and receiver form a structural unit and in which at least one part is used for functions of transmitting and receiving
    • H04B1/40Circuits
    • H04B1/50Circuits using different frequencies for the two directions of communication
    • H04B1/52Hybrid arrangements, i.e. arrangements for transition from single-path two-direction transmission to single-direction transmission on each of two paths or vice versa
    • H04B1/525Hybrid arrangements, i.e. arrangements for transition from single-path two-direction transmission to single-direction transmission on each of two paths or vice versa with means for reducing leakage of transmitter signal into the receiver
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q3/00Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system
    • H01Q3/26Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system varying the relative phase or relative amplitude of energisation between two or more active radiating elements; varying the distribution of energy across a radiating aperture
    • H01Q3/2605Array of radiating elements provided with a feedback control over the element weights, e.g. adaptive arrays
    • H01Q3/2611Means for null steering; Adaptive interference nulling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas

Definitions

  • the present invention relates generally to radio communication systems and more particularly, relates to increasing uplink and downlink cell capacity using the same frequency and time slot.
  • the time axis is divided into intervals of equal durations called frames.
  • Cellular systems employing the TDD mode divide frames into a finite number (NT) of intervals of equal duration, called slots, and allow a cell to use some or all of the slots for uplink (mobile-to-base) or downlink (base-to-mobile) transmissions.
  • NT finite number
  • the slot assignment of a cell defines how each slot is used by the cell. It is generally understood that there are three possible ways for a cell to use a slot: (1) for uplink transmissions, (2) for downlink transmissions, or (3) not used.
  • the assignment of slots within a cell can be varied by the system to conform to the long-term variations of offered traffic. For example, the system may modify the assignment of one slot from uplink to downlink if the intensity of offered downlink traffic increases while the offered uplink traffic decreases.
  • different cells of a system do not generally need to have the same slot assignment. Thus, if offered traffic characteristics in one geographical area are different from another geographical area, the cells covering those areas may have different assignments so as to best adapt to local traffic conditions.
  • the present invention exploits the use of adaptive antennas at wireless transmit/receive units (WTRUs) to allow a cell to use the same frequency and time slot for both its uplink and downlink transmissions. This results in a significant increase in capacity that can be used, for example, in hot spot situations. Additionally, uplink and downlink capacity of the system as a whole can be dramatically increased if adaptive antennas are also used at the base station.
  • WTRUs wireless transmit/receive units
  • FIG. 1 is a block diagram of a base station constructed in accordance with a first embodiment of the present invention
  • FIG. 2 is a block diagram of an alternate embodiment of the base station shown in FIG. 1;
  • FIG. 3 is a block diagram of a base station construction in accordance with a second embodiment of the present invention
  • FIG. 4 is a block diagram of an alternate embodiment of the base station shown in FIG. 3;
  • FIG. 5 is a block diagram showing the operation of the adaptive self- interference canceller shown in FIGS. 1-4;
  • FIG. 6 shows the interference between two mobile units using the same slot in opposite directions
  • FIG. 7 shows mitigation of interference between two mobile units using adaptive antennas
  • FIG. 8 shows mitigation of interference between three base stations using adaptive antennas.
  • TDD time division duplex
  • UL uplink
  • DL downlink
  • a WTRU transmitter would create interference to its own receiver only if it is allowed to transmit and receive on the same slot, which is not mandatory even if the base station transmits and receives on the same slot.
  • the base station self-interference problem must be addressed at two levels.
  • the first level is at the RF (analog) stage of the receiver which is in jeopardy of being saturated by the high-power signal coming from the transmitter.
  • the second level is at the baseband stage, in which the base station's own transmitted signal will find itself at the same frequency as the desired signal in the baseband stage since it has not been completely eliminated and it will return to the antenna after having been subjected to reflections and scattering in the multipath environment.
  • FIG. 1 shows a base station 100 constructed in accordance with the present invention.
  • the base station 100 includes an antenna 102 that transmits and receives the electromagnetic signal to and from the environment.
  • a circulator 104 is connected to the antenna 102, to the input of a receiver 106, and to the output of a transmitter 108.
  • the receiver 106 is connected to an analog-to-digital converter (ADC) 110, which converts the received analog signal into a digital signal.
  • ADC analog-to-digital converter
  • An adder 112 is connected to the ADC 110 and is used in connection with an adaptive self-interference canceller 120, as will be described in connection with FIG. 5 below.
  • a receive baseband module 114 decodes the desired received signal.
  • the transmitter 108 receives the output of a digital-to-analog converter (DAC) 116 which processes a digital signal received from a transmit baseband module 118.
  • DAC digital-to-analog converter
  • the circulator 104 provides isolation from the transmitter 108 to the receiver 106, but will let the signal flow from the transmitter 108 to the antenna 102 and from the antenna 102 to the receiver 106.
  • the isolation provided by the circulator 104 is limited in practice to around 30 dB, and that implies two things.
  • the sensitivity of the signal power of the receiver 106 and/or the transmitter 108 may need to be reduced to avoid non-linear behavior of the receiver front-end under the attenuated transmitted signal.
  • the front-end of the receiver 106 includes non-linear components, such as amplifiers or mixers, which may generate significant undesired signals at their output when they are subject to signals of high amplitude. In order to avoid this, it may be necessary to insert an attenuator at the input of a non-linear component to limit the amplitude of the signal. However, this has the effect of reducing the sensitivity of the receiver 106.
  • FIG. 2 shows an alternate embodiment of the base station 100 shown in FIG. 1.
  • elements shown in FIG. 2 that correspond to elements shown in FIG. 1 have been given like reference numerals, increased by one hundred.
  • a base station 200 includes an antenna array 202, each of the antennas in the array 202 being used to both transmit and receive signals.
  • Each antenna in the array 202 is connected to a corresponding circulator 204a-204d.
  • the circulators 204a-204d are connected to the input of a receiver 206 and the output of a transmitter 208.
  • the receiver 206 is connected to an ADC 210, which converts the received analog signals into digital signals.
  • a set of adders 212a- 212d, each adder 212 corresponding to one antenna in the array 202, are connected to the ADC 210 and are used in connection with an adaptive self- interference canceller 220, as will be described in connection with FIG. 5 below.
  • a receive baseband module 214 decodes the desired received signal.
  • the transmitter 208 receives the output of a DAC 216 which processes a digital signal received from a transmit baseband module 218. While the base station 200 has been shown having an antenna array 202 with four antennas, four circulators 204a-204d, and four adders 212a-212d, it is to be understood that the base station 200 can be constructed with any number of antennas, circulators, and adders, provided that there is a one-to-one correspondence between the antennas, circulators, and adders.
  • a base station 300 can use two antennas 302, 303, one for receiving and one for transmitting.
  • the antenna 302 is used for receiving signals and is connected to a receiver 306.
  • the receiver 306 is connected to an ADC 310, which converts the received analog signal into a digital signal.
  • An adder 312 is connected to the ADC 310 and is used in connection with an adaptive self-interference canceller 320, as will be described in connection with FIG. 5 below.
  • a receive baseband module 314 decodes the desired received signal.
  • the antenna 303 is used for transmitting signals and is connected to a transmitter 308.
  • the transmitter 308 receives the output of a DAC 316 which processes a digital signal received from a transmit baseband module 318.
  • FIG. 4 shows an alternate embodiment of the base station 300 shown in FIG. 3.
  • elements shown in FIG. 4 that correspond to elements shown in FIG. 3 have been given like reference numerals, increased by one hundred.
  • a base station 400 has two antenna arrays 402, 403, one for transmitting and one for receiving.
  • the antenna array 402 is used for receiving signals and each of the antennas in the array 402 is connected to a receiver 406.
  • the receiver 406 is connected to an ADC 410, which converts the received analog signals into digital signals.
  • a set of adders 412a-412d, each adder 412 corresponding to one antenna in the array 402, are connected to the ADC 410 and are used in connection with an adaptive self-interference canceller 420, as will be described in connection with FIG. 5 below.
  • a receive baseband module 414 decodes the desired received signals.
  • the antenna array 403 is used for transmitting signals and each of the antennas in the array 403 is connected to a transmitter 408.
  • FIG. 5 is an enlarged block diagram illustrating the function of the adaptive self-interference canceller shown in FIGS. 1-4.
  • elements shown in FIG. 5 that correspond to elements shown in FIGS. 1-4 have been given like reference numerals, with the difference being in the hundreds place.
  • an adaptive self-interference canceller 520 subtracts the self-interference from the rest of the received signal.
  • the canceller 520 functions as an adaptive filter. Let x(t) be the signal generated by a transmit baseband module 518, and let r(t) be the signal received at the input of a receive baseband module 514 after processing by the ADC (not shown in FIG. 5).
  • the received signal r(t) can be written as the sum of two signals, y(t) and d(t), where y(t) is the self-interference consisting of the echoes of x(t) from the multipath environment as well as its incomplete attenuation through the circulator (not shown in FIG.
  • d(t) is the desired received signal from the WTRUs.
  • the output of the canceller 520, y ⁇ (t), is the estimation of the self-interference y(t) and is subtracted from the received signal r(t) by an adder 512.
  • the result of this subtraction, e(t), consists of the estimated desired received signal and is sent to the receive baseband module 514 for decoding.
  • the signal e(t) is also used as a control signal for the canceller 520, allowing it to track variations of the multipath environment induced by the movement of objects.
  • the canceller 520 can be implemented as a linear finite-impulse response (FIR) filter.
  • FIR linear finite-impulse response
  • the weights of this filter can be computed as a function of the input signal (x(t)) and the control signal (e(t)) using any state-of-the-art algorithm applying to linear filters, such as Recursive Least Squares (RLS).
  • RLS Recursive Least Squares
  • the solution depends on whether the WTRU is allowed to transmit in the same slot within which it is receiving.
  • the first possibility is that the WTRUs are not allowed to transmit and receive simultaneously in the same slot. This does not prohibit use of the present invention at the base station, because the base station can serve several WTRUs in a given time slot.
  • the base station is allowed to transmit and receive simultaneously at the same frequency, it is not required that the transmission and the reception are for the same WTRU.
  • SI accommodates the downlink of WTRU A and the uplink of WTRU B.
  • the uplink of WTRU A and the downlink of WTRU B can be accommodated in a different time slot, for example, S2.
  • the second possibility is that the WTRUs are allowed to transmit and receive in the same time slot. This presents the advantage of higher flexibility in terms of assigning WTRUs to time slots, since the WTRUs are not constrained to use different slots for their uplink and downlink transmissions. However, this possibility results in higher complexity and higher cost for the WTRUs, since the WTRUs need the adaptive self-interference canceller and the circulator.
  • the WTRUs need to use adaptive antennas in order to mitigate the interference coming from other WTRUs transmitting in the same slot that they are receiving in. Even if the WTRU transmits and receives in the same time slot, e.g., S3, this does not exclude another WTRU from transmitting in time slot S3 because the base station is allowed to receive signals from more than one WTRU in a given time slot, as in prior art systems.
  • One embodiment of a WTRU constructed in accordance with the present invention is similar to that shown and described above in connection with FIG. 2. The use and function of each element is the same as in the case of the base station, with one signal path existing for each antenna in the array 202.
  • the setting of the weights applied to each array element is performed at the receive baseband module 214 and the transmit baseband module 218.
  • the architecture supports digital beamforming.
  • the adaptive self-interference canceller 220 is required only if the WTRU is permitted to transmit and receive in the same slot. [0046] Adaptive Antennas
  • the WTRU A may create interference to WTRU
  • WTRU B geographically located in the vicinity of WTRU A if WTRU B is using the transmit slot of WTRU A as its receive slot.
  • WTRU B can escape (i.e., switch) to another slot for its receptions.
  • WTRUs are equipped with adaptive antennas to overcome this problem.
  • the adaptive antenna pattern of WTRU A is steered towards its serving base station or in the direction most favorable to adequate reception at the base station, thereby decreasing the probability that significant interference is sent to WTRU B.
  • the adaptive antenna pattern of WTRU B is steered towards its serving base station so as to obtain the best possible reception.
  • WTRU B has the capability of setting a null in the direction where interference is the greatest, presumably from WTRU A.
  • adaptive antennas which are constructed as an array of antenna elements, enhance the reception of the desired signal while suppressing the interfering signals, by exploiting the fact that the desired signals and the interfering signals often come from dominant directions.
  • By properly weighting and combining the signals of each array element it is possible to enhance the signals received from/transmitted to certain directions, while suppressing the signals received from/transmitted to other directions.
  • the weighting adjustments are performed by adaptive algorithms in the transmit baseband and receive baseband modules that exploit certain characteristics of the desired and/or interfering signals to differentiate them; for example, a known sequence of symbols.
  • the system could use the midambles of the desired and main interfering signals to help determine the optimal weight adjustment resulting in the best possible signal-to-interference ratio.
  • the concept of using adaptive antennas is novel in the current setting.
  • the adaptive antenna deployed at WTRU B serves primarily to reduce the interference produced by other WTRUs operating in the same cell or in neighboring cells, and transmitting in the same time slot that WTRU B uses for receiving.
  • the adaptive antennas would be used to improve system performance by the following mechanisms: (1) when deployed at a base station, by reducing the interference produced by the transmissions of WTRUs other than the desired WTRU while enhancing the signal from the desired WTRU; and (2) when deployed at a WTRU, by reducing the interference produced by the transmissions of base stations other than the serving base station while enhancing the signal from the serving base station.
  • adaptive antennas at WTRU A could also be used to reduce the interference from other WTRUs if the other WTRUs transmit in the same time slot as the one used by WTRU A for receiving, but the other WTRUs could only be situated in other cells of the system.
  • the maximum benefit is achieved when the base station is also equipped with adaptive antennas. It is not mandatory that all WTRUs in the system be equipped with adaptive antennas. The system could reserve a subset of the available time slots for these WTRUs, and in this subset of time slots, simultaneous transmission and reception at the base stations would not be allowed.
  • a base station uses an omni-directional or wide-beam antenna as in the prior art, it is generally not possible for a neighboring cell to use the same slot in any direction due to the resulting interference between base stations.
  • equipping the base station with adaptive antennas in accordance with the present invention permits neighboring cells to use the same slot for both uplink and downlink directions, potentially resulting in a doubling of the capacity of the system in both directions.
  • base stations A, B, and C set nulls in the direction of each other through their respective adaptive antennas, so as to minimize their mutual interference.
  • the architecture of a base station using adaptive antennas could be the same as that shown in FIG. 2.
  • the base station could use two separate antenna arrays for transmission and reception as shown in FIG. 4.
  • One drawback with this null-setting scheme is that the base station antenna pattern can potentially degrade the coverage in certain regions, particularly along the axis joining two neighboring base stations.
  • SDMA spatial division multiple access

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Transceivers (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Near-Field Transmission Systems (AREA)
EP04701824A 2003-01-21 2004-01-13 System und verfahren zur vergrösserung derzellularsystemkapazität durch verwendung derselben frequenz und desselben zeitschlitzes sowohl für aufwärts- als auch abwärtsübertragungen Ceased EP1586169A4 (de)

Applications Claiming Priority (5)

Application Number Priority Date Filing Date Title
US44171303P 2003-01-21 2003-01-21
US441713P 2003-01-21
US10/624,812 US7096042B2 (en) 2003-01-21 2003-07-22 System and method for increasing cellular system capacity by the use of the same frequency and time slot for both uplink and downlink transmissions
US624812 2003-07-22
PCT/US2004/000882 WO2004068777A2 (en) 2003-01-21 2004-01-13 System and method for increasing cellular system capacity using same frequency and time slot in uplink and downlink transmissions

Publications (2)

Publication Number Publication Date
EP1586169A2 true EP1586169A2 (de) 2005-10-19
EP1586169A4 EP1586169A4 (de) 2010-03-10

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US (1) US7096042B2 (de)
EP (1) EP1586169A4 (de)
AR (1) AR043351A1 (de)
MY (1) MY135455A (de)
TW (3) TW200746665A (de)
WO (1) WO2004068777A2 (de)

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MY135455A (en) 2008-04-30
TWI266549B (en) 2006-11-11
TW200746665A (en) 2007-12-16
US7096042B2 (en) 2006-08-22
WO2004068777A3 (en) 2005-03-10
AR043351A1 (es) 2005-07-27
TW200420166A (en) 2004-10-01
TW200520422A (en) 2005-06-16
WO2004068777A2 (en) 2004-08-12
US20040142700A1 (en) 2004-07-22
TWI337469B (en) 2011-02-11

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